Myotonic dystrophy (dystrophia myotonica, DM) is a multi-systemic disease caused by expanded CTG or CCTG microsatellite repeats. Characterized by symptoms in muscle, heart and central nervous system, among others, it is one of the most variable diseases known. A major pathogenic event in DM is the sequestration of muscleblind-like proteins by CUG or CCUG repeat-containing RNAs transcribed from expanded repeats, and differences in the extent of MBNL sequestration dependent on repeat length and expression level may account for some portion of the variability. However, many other cellular pathways are reported to be perturbed in DM, and the severity of specific disease symptoms varies among individuals. To help understand this variability and facilitate research into DM, we generated 120 RNASeq transcriptomes from skeletal and heart muscle derived from healthy and DM1 biopsies and autopsies. A limited number of DM2 and Duchenne muscular dystrophy samples were also sequenced. We analyzed splicing and gene expression, identified tissue-specific changes in RNA processing and uncovered transcriptome changes strongly correlating with muscle strength. We created a web resource at http://DMseq.org that hosts raw and processed transcriptome data and provides a lightweight, responsive interface that enables browsing of processed data across the genome.
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http://dx.doi.org/10.1093/hmg/ddy432 | DOI Listing |
Zh Nevrol Psikhiatr Im S S Korsakova
December 2024
Republican Scientific and Practical Center of Neurology and Neurosurgery, Minsk, Belarus.
Objective: To analyze the results of nocturnal breathing parameters during sleep based on nocturnal pulse oximetry and to study of characteristics of external respiration in genetically confirmed patients with dystrophic myotonia (DM).
Material And Methods: The subjects of the study were patients with genetically confirmed DM types 1 and 2 who were hospitalized in the neurological departments of the Republican Scientific and Practical Center for Neurology and Neurosurgery. The clinical picture of the disease, comorbidities, sleep questionnaires, laboratory tests, overnight pulse oximetry and spirometry were performed and analyzed.
Genetics
December 2024
Institute of Biotechnology, HiLIFE, University of Helsinki, Helsinki 00790, Finland.
Expansion of nucleotide repeat sequences is associated with more than 40 human neuromuscular disorders. The different pathogenic mechanisms associated with the expression of nucleotide repeats are not well understood. We use a Caenorhabditis elegans model that expresses expanded CUG repeats only in cells of the body wall muscle and recapitulate muscle dysfunction and impaired organismal motility to identify the basis by which expression of RNA repeats is toxic to muscle function.
View Article and Find Full Text PDFAs adaptors, catalysts, guides, messengers, scaffolds and structural components, RNAs perform an impressive array of cellular regulatory functions often by recruiting RNA-binding proteins (RBPs) to form ribonucleoprotein complexes (RNPs). While this RNA-RBP interaction network allows precise RNP assembly and the subsequent structural dynamics required for normal functions, RNA motif mutations may trigger the formation of aberrant RNP structures that lead to cell dysfunction and disease. Here, we provide our perspective on one type of RNA motif mutation, RNA gain-of-function mutations associated with the abnormal expansion of short tandem repeats (STRs) that underlie multiple developmental and degenerative diseases.
View Article and Find Full Text PDFBioessays
December 2024
CHU Sainte-Justine Research Center, Montreal, Quebec, Canada.
Myotonic dystrophy type 1 (DM1) is considered a progeroid disease (i.e., causing premature aging).
View Article and Find Full Text PDFAdv Healthc Mater
December 2024
Evolved.Bio, 280 Joseph Street, Kitchener, Ontario, N2G4Z5, Canada.
Progress in understanding the underlying mechanisms of muscular dystrophies is hindered by the lack of pathophysiologically relevant in vitro models. Here, an entirely scaffold-free anchored cell sheet engineering platform is used to create patient-specific three-dimensional (3D) skeletal muscle in vitro models. This approach effectively replicates mature muscle phenotypes and tissue- and disease-specific extracellular matric (ECM).
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